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经CRISPR/Cas9编辑的SlGT30通过核内复制提高了抗旱性和果实产量。

CRISPR/Cas9 edited SlGT30 improved both drought resistance and fruit yield through endoreduplication.

作者信息

Lv Hongmei, Wang Xuewei, Dong Xiaonan, Gao Ming, Dong Danhui, Li Chonghua, Jing Shirui, Guo Yang-Dong, Zhang Na

机构信息

Beijing Key Laboratory of Growth and Developmental Regulation for Protected Vegetable Crops, College of Horticulture, China Agricultural University, Beijing, China.

Sanya Institute of China Agricultural University, Sanya, China.

出版信息

Plant Cell Environ. 2025 Apr;48(4):2581-2595. doi: 10.1111/pce.14927. Epub 2024 May 2.

Abstract

There is often a trade-off effect between different agronomic traits due to gene pleiotropy, leading to a negative correlation between yield and resistance. Consequently, using gene-editing techniques to develop superior traits becomes challenging. Genetic resources that defy this constraint are scarce but hold great potential as targets for improvement through the utilisation of CRISPR. Transcription factors are critical in modulating numerous gene expressions across diverse biological processes. Here, we found that the trihelix transcription factor SlGT30 plays a role in drought resistance and tomato fruit development. We edited the SlGT30 gene with CRISPR/Cas9 technology and found that the knockout lines showed decreased stomata density in the leaves and large fruits. Subsequent examination revealed that cell ploidy was impacted in the leaves and fruits of SlGT30 knockout lines. SlGT30 knockout affected cell size through the endoreduplication pathway, manifested in decreased stomata density and reduced water loss. Consequently, this resulted in an enhancement of drought resistance. For the fruit, both cell size and cell number increased in the fruit pericarp of knockout lines, improving the fruit size and weight accordingly. Therefore, SlGT30 represents a promising candidate gene for gene editing in breeding practice.

摘要

由于基因多效性,不同农艺性状之间往往存在权衡效应,导致产量与抗性呈负相关。因此,利用基因编辑技术培育优良性状具有挑战性。突破这一限制的遗传资源稀缺,但作为通过利用CRISPR进行改良的目标具有巨大潜力。转录因子在调节不同生物过程中的众多基因表达方面至关重要。在此,我们发现三螺旋转录因子SlGT30在番茄抗旱性和果实发育中发挥作用。我们利用CRISPR/Cas9技术编辑了SlGT30基因,发现敲除系叶片气孔密度降低,果实变大。随后的检测表明,SlGT30敲除系的叶片和果实中的细胞倍性受到影响。SlGT30敲除通过核内复制途径影响细胞大小,表现为气孔密度降低和水分损失减少。因此,这导致了抗旱性的增强。对于果实,敲除系果实果皮中的细胞大小和细胞数量均增加,相应地提高了果实大小和重量。因此,SlGT30是育种实践中基因编辑的一个有前景的候选基因。

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